Literature DB >> 30971475

Aedes aegypti NeSt1 Protein Enhances Zika Virus Pathogenesis by Activating Neutrophils.

Andrew K Hastings1, Ryuta Uraki1, Hallie Gaitsch1, Khushwant Dhaliwal1, Sydney Stanley1, Hannah Sproch1, Eric Williamson1, Tyler MacNeil1, Alejandro Marin-Lopez1, Jesse Hwang1, Yuchen Wang1, Jonathan R Grover1, Erol Fikrig2,3.   

Abstract

Saliva from the mosquito vector of flaviviruses is capable of changing the local immune environment, leading to an increase in flavivirus-susceptible cells at the infected bite site. In addition, an antibody response to specific salivary gland (SG) components changes the pathogenesis of flaviviruses in human populations. To investigate whether antigenic SG proteins are capable of enhancing infection with Zika virus (ZIKV), a reemerging flavivirus primarily transmitted by the Aedes aegypti mosquito, we screened for antigenic SG proteins using a yeast display library and demonstrate that a previously undescribed SG protein we term neutrophil stimulating factor 1 (NeSt1) activates primary mouse neutrophils ex vivo Passive immunization against NeSt1 decreases pro-interleukin-1β and CXCL2 expression, prevents macrophages from infiltrating the bite site, protects susceptible IFNAR-/- IFNGR-/- (AG129) mice from early ZIKV replication, and ameliorates virus-induced pathogenesis. These findings indicate that NeSt1 stimulates neutrophils at the mosquito bite site to change the immune microenvironment, allowing a higher level of early viral replication and enhancing ZIKV pathogenesis.IMPORTANCE When a Zika virus-infected mosquito bites a person, mosquito saliva is injected into the skin along with the virus. Molecules in this saliva can make virus infection more severe by changing the immune system to make the skin a better place for the virus to replicate. We identified a molecule that activates immune cells, called neutrophils, to recruit other immune cells, called macrophages, that the virus can infect. We named this molecule neutrophil-stimulating factor 1 (NeSt1). When we used antibodies to block NeSt1 in mice and then allowed Zika virus-infected mosquitoes to feed on these mice, they survived much better than mice that do not have antibodies against NeSt1. These findings give us more information about how mosquito saliva enhances virus infection, and it is possible that a vaccine against NeSt1 might protect people against severe Zika virus infection.
Copyright © 2019 American Society for Microbiology.

Entities:  

Keywords:  Zika virus; arthropod-borne virus; flavivirus; immunity; mosquito; mosquito-borne; neutrophils; salivary gland; vaccine; viral pathogenesis

Mesh:

Substances:

Year:  2019        PMID: 30971475      PMCID: PMC6580965          DOI: 10.1128/JVI.00395-19

Source DB:  PubMed          Journal:  J Virol        ISSN: 0022-538X            Impact factor:   5.103


  65 in total

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6.  AgBR1 and NeSt1 antisera protect mice from Aedes aegypti-borne Zika infection.

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